APPLICATION AND MAINTENANCE OF TENSION TO TRANSMISSION LINE IN PIPE
Disclosed is a method and assembly for providing tension to a transmission line in a pipe. The method includes inserting a transmission line into a transmission line channel of a pipe. The transmission line has a first end and a second end, the transmission line being inserted into a first end of the pipe second-end-first. The transmission line has a first tension-load-supporting mechanism attached to the first end of the transmission line. The method includes applying a first level of tension to the transmission line in the pipe and applying a second tension-load-supporting mechanism to the second end of the transmission line while the first level of tension is applied to the transmission line. The method further includes removing the first level of tension from the transmission line to maintain a second level of tension along the transmission line between the first and second tension-load-supporting mechanisms.
In oil and gas drilling and completion systems, power and data are communicated between downhole devices and uphole devices via transmission lines that extend along well pipes. When the transmission lines are slack in the well pipe, they may be damaged by fluids and debris flowing through the well pipe.
BRIEF DESCRIPTION OF THE INVENTIONDisclosed herein is a method for providing tension to a transmission line in a pipe. The method includes inserting a transmission line into a transmission line channel of a pipe. The transmission line has a first end and a second end, the transmission line being inserted into a first end of the pipe second-end-first. The transmission line has a first tension-load-supporting mechanism attached to the first end of the transmission line. The method includes applying a first level of tension to the transmission line in the pipe and applying a second tension-load-supporting mechanism to the second end of the transmission line while the first level of tension is applied to the transmission line. The method further includes removing the first level of tension from the transmission line to maintain a second level of tension along the transmission line between the first and second tension-load-supporting mechanisms.
Further disclosed herein is a pipe assembly. The pipe assembly includes a pipe having a main cavity extending through the pipe along a longitudinal axis and a transmission line channel located radially outward from the main cavity and extending through the pipe substantially parallel to the longitudinal axis. The transmission line channel has a first shoulder at a first end of the transmission line channel and a second shoulder at a second end of the transmission line channel. The transmission line assembly includes a transmission line extending along the transmission line channel, a first tension-load-bearing mechanism at a first end of the transmission line and a second tension-load-bearing mechanism at a second end of the transmission line. The first tension-load-bearing mechanism and the second tension-load-bearing mechanism are configured to press against the first shoulder and the second shoulder, respectively, to maintain a tension along the transmission line.
The following descriptions should not be considered limiting in any way. With reference to the accompanying drawings, like elements are numbered alike:
A detailed description of one or more embodiments of the disclosed apparatus and method are presented herein by way of example and not limitation with reference to the Figures.
The pipe body 110 includes a first end 101 and a second end 102. In
Referring to
The first end 201 may include a threaded portion 214 adjacent to the end surface 215, and the second end 202 may include a threaded portion 234 adjacent to the end surface 235 of the second end 202. The threaded portion 214 of the first end 201 may be configured to securely engage with the threaded portion 234 of the second end 202 of an adjacent pipe segment, such that multiple pipe segments may be connected with a fluid-tight seal end-to-end.
The first end 201 includes a first transmission line channel having a first channel portion 216a and a second channel portion 217a. The first channel portion 216a and the second channel portion 217a are co-axial, and the first channel portion 216a has a diameter greater than the second channel portion 217a, such that a shoulder 218a is located at one end of the first channel portion 216a where the first channel portion 216a connects to the second channel portion 217a. The first end 201 also includes a second transmission line channel having a third channel portion 216b and a fourth channel portion 217b with a shoulder 218b between the third and fourth channel portions 216b and 217b. The second channel portion 217a has an opening 219a that opens to the main cavity portion 213, and the fourth channel portion 217b has an opening 219b that opens to the main cavity portion 213. While an embodiment of the invention is illustrated with the openings 219a and 219b, in another embodiment, a transmission line channel extends from one end of the drill pipe 210 to the other entirely within the wall of the drill pipe 210, without opening to the main cavity portion 213.
Referring to
The second end 202 also includes a groove 240 at the end surface 235, and the fifth and seventh channel portions 236a and 236b open into the groove 240. It should be noted that a similar groove may be present at the first end surface 215 of the first end 201 illustrated in
In embodiments of the invention, the first through eighth channel portions 216a, 216b, 217a, 217b, 236a, 236b, 237a and 237b are formed in the well pipe 210 radially outward from the main channel of the pipe 210. For example, as illustrated in
Although two transmission line channels are illustrated in each of
Similarly, as illustrated in
As illustrated in
In one embodiment of the invention, the second axial load sleeve 302b is welded or fixed to the transmission line 301 prior to inserting the transmission line into the well pipe 210. In such an embodiment, the diameter of the axial load sleeve 302b must be less than the diameter of the opening 239a and the sixth channel portion 237a of the third transmission line channel. In such an embodiment, since the diameter of the axial load sleeve 302b is less than the diameter of the sixth channel portion 237a to permit insertion of the axial load sleeve 302b into the sixth channel portion 237a, the axial load sleeve 302b, alone, is an insufficient structure to maintain tension in the transmission line 301, since the axial load sleeve 302b would be freely slideable within the sixth channel portion 237a.
While an embodiment has been described in which the transmission line 301 is inserted into first channel 126a, through the second channel 217a, through the center portion 213, and through the sixth channel portion 237a into the fifth channel portion 236a, embodiments of the invention also encompass other methods of inserting the transmission line 301 into the transmission line channels. For example, in one embodiment, a transmission line is inserted into the center portion 230 of the main cavity, one end is inserted into the second channel 217a via the opening 219a and the opposite end is inserted into the sixth channel portion 237a via the opening 239a.
As a result, when the tension generating tool 600 releases its grip of the transmission line 301, the wider end of the constriction sleeve 701 presses against the shoulder 238a and the narrower end transmits an axial force, corresponding to the tension of the transmission line 301, to the second axial load sleeve 302b. Also illustrated in
As illustrated in
While
As illustrated in
As illustrated in
Referring to
Referring to
In one embodiment, as illustrated in
The axial load sleeves 803a and 803b may be made of any material or combination of materials. For example, in one embodiment the axial load sleeves 803a and 803b are made from a shape memory material such that when heat is applied to the axial load sleeves 803a and 803b after the axial load sleeves 803a and 803b are slid over the transmission lines 301a and 301b, the axial load sleeves 803a and 803b constrict to lock onto the transmission lines 301a and 301b. In another embodiment, the axial load sleeves 803a and 803b are welded to the transmission lines 301a and 301b. In another embodiment, the axial load sleeves 803a and 803b include a welded component that is welded directly to the transmission lines 301a and 301b and that has a diameter less than the fifth and seventh channel portions 236a and 236b of the well pipe 210, respectively. A shape memory component may be slid over the welded components and heated to constrict around the transmission lines 301a and 301b. The shape memory components may have a diameter greater than the fifth and seventh channel portions 236a and 236b, such that the shape memory components transfer a tension force from the shoulders 238a and 238b to the transmission line 301.
Referring to
In one embodiment of the invention, a first tension level is applied to the transmission lines 301a and 301b to affix one or more of the axial load sleeves 803a and 803b, sealing sleeves 804a and 804b or transmission element 805 to the transmission lines 301a and 301b. The first tension level is applied by pulling the transmission lines 301a and 301b with a tension-generating device 600 inserted into a main cavity of the well pipe 210. In a completed state, a second tension level is maintained on the transmission lines 301a and 301b, and the second tension level is less than the first tension level. The second tension level is maintained by the axial load sleeves 803a and 803b pressing up against the shoulders 238a and 238b. In other words, the second tension level is sufficient to keep the axial load sleeves 803a and 803b in contact with the shoulders 238a and 238b, even though the second tension level is less than the first tension level.
While embodiments of the invention have been described with respect to axial load sleeves, constriction sleeves and shape memory rings or sleeves, embodiments of the invention are not limited to these mechanisms for maintaining tension in a transmission line of a well pipe. Instead, embodiments encompass any mechanism for maintaining tension, including components that are welded to the transmission line either before or after inserting the transmission line into a well pipe, any mechanism that constricts around the transmission lines upon receipt of a mechanical force, any mechanism that constricts around the transmission lines upon receipt of a predetermined level of heat, a chemically-initiated mechanism, or any other mechanism capable of constricting and maintaining a tension force between a shoulder of a transmission line cavity and a welded axial load sleeve.
In addition, while embodiments of the invention are described herein with co-axially aligned transmission line channels, embodiments also encompass transmission line channels that are not axially aligned.
The method includes, in block 901, attaching a tension load bearing mechanism to the first end of a transmission line. The tension load bearing mechanism may be a sleeve that slides over the surface of the transmission line and may be welded or otherwise permanently attached to the transmission line. The tension load bearing mechanism is any mechanism that fits within a transmission line cavity of a well pipe and has a diameter sufficiently large that the tension load bearing mechanism abuts a shoulder in the transmission line cavity and maintains tension on the transmission line when a tension force is applied along the transmission line.
In block 902, the second end of the transmission line is inserted through the transmission line channel into the well pipe. In block 903, tension is applied to the transmission line with a tension-generating tool. In one embodiment, the tension-generating tool is inserted into the second end of the well pipe opposite the first end into which the transmission line is inserted. The tension-generating tool may grip the transmission line and pull the transmission line in a direction from the first end towards the second end of the transmission line. As a result of the tension-generating force of the tension-generating tool, the load bearing mechanism on the first end of the transmission line abuts the shoulder in the transmission line cavity and the tension is generated in the transmission line.
In block 904, a tension load bearing mechanism is attached to the second end of the transmission line on an opposite side of the transmission line from the first end of the transmission line. In one embodiment, the tension load bearing mechanism is attached after applying the tension to the transmission line in block 903. In another embodiment, one component of the tension load bearing mechanism is attached to the transmission line prior to applying the load, and another component is attached after applying the load. In one embodiment, the prior-applied component is a welded sleeve having a diameter smaller than the diameters of the transmission line channels in the well pipe, and the later-applied component is a constricting component that slides over the previously-applied component and constricts. The later-applied component may have a diameter larger than the previously-applied component, and may transfer a tension force from a shoulder of the transmission line channel to the prior-applied component.
In block 905, the tension-generating tool releases the transmission line. In block 906, tension is maintained on the transmission line by the tension load bearing mechanisms at each end of the transmission line. In particular, each of the tension load bearing mechanisms is held in place by a respective shoulder in the transmission line channels of the well pipe.
As discussed above, and with reference to
However, embodiments of the invention are not limited to such a configuration. For example, in another embodiment, illustrated in
While the invention has been described with reference to example embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiments disclosed as the best mode contemplated for carrying out this invention, but that the invention will include all embodiments falling within the scope of the claims.
Claims
1. A method of providing tension to a transmission line in a pipe, comprising:
- inserting a transmission line into a transmission line channel of a pipe, the transmission line having a first end and a second end, the transmission line being inserted into a first end of the pipe second-end-first, and the transmission line having a first tension-load-supporting mechanism attached to the first end of the transmission line;
- applying a first level of tension to the transmission line in the pipe;
- applying a second tension-load-supporting mechanism to the second end of the transmission line while the first level of tension is applied to the transmission line; and
- removing the first level of tension from the transmission line to maintain a second level of tension along the transmission line between the first and second tension-load-supporting mechanisms.
2. The method of claim 1, wherein the second tension-load-supporting mechanism is a sealing sleeve, the sealing sleeve configured to isolate at least a portion of the transmission line channel from a fluid located in a main cavity of the pipe.
3. The method of claim 2, wherein the sealing sleeve is connected to the transmission line by one of a welding lid, a rubber seal, an elastomeric seal, a glue connection, a solder connection.
4. The method of claim 1, wherein the second level of tension is less than the first level of tension.
5. The method of claim 1, wherein applying the first level of tension includes inserting a tension generating device into a second end of the pipe opposite the first end.
6. The method of claim 5, wherein applying the first level of tension includes inserting the tension generating device into the transmission line channel.
7. The method of claim 5, wherein the tension generating device includes an extended portion and a grip portion, and
- applying the first level of tension to the transmission line includes gripping the transmission line with the grip portion of the tension generating device and pulling the transmission line in a direction from the first end of the transmission line to the second end of the transmission line while the first tension-load-supporting mechanism abuts a first shoulder in the transmission line channel.
8. The method of claim 1, wherein the first tension-load-supporting mechanism is a sleeve that is welded onto the transmission line.
9. The method of claim 1, wherein the transmission line channel has a first end at the first end of the pipe and a second end inside the pipe, and
- a diameter of the tension-load-supporting mechanism is less than a diameter of an opening at the second end of the transmission line channel.
10. The method of claim 1, wherein the second tension-load-supporting mechanism is a sleeve that is welded onto the transmission line after the tension is applied to the transmission line by the tension generating device.
11. The method of claim 1, wherein the second tension-load-supporting mechanism includes an axial load sleeve and a constricting sleeve, the axial load sleeve being attached to the transmission line and the axial load sleeve having a diameter less than the transmission line channel, and
- wherein applying the second tension-load-supporting mechanism to the transmission line comprises:
- sliding the constricting sleeve over the second load-supporting sleeve in a direction from the second end of the transmission line towards the first end of the transmission line; and
- constricting the constricting sleeve such that an inner diameter of the constricting sleeve adjacent to the axial load sleeve is less than an outer diameter of the axial load sleeve.
12. The method of claim 11, wherein constricting the constricting sleeve includes applying a force to an outer surface of the constricting sleeve with a cone sleeve having a slanted inner surface.
13. The method of claim 11, wherein the constricting sleeve is made of a shape memory material, and
- constricting the constricting sleeve includes applying heat to the constricting sleeve to change a shape or diameter of the constricting sleeve.
14. The method of claim 1, wherein inserting the transmission line into the transmission line channel of the pipe includes inserting a first transmission line into a first transmission line channel of the pipe and inserting a second transmission line into a second transmission line channel of the pipe, and
- the method further comprises:
- attaching a transmission element to the first ends of each of the first transmission line and the second transmission line prior to applying the first level of tension to the first transmission line and the second transmission line.
15. The method of claim 14, wherein applying the second tension-load-supporting mechanism to the second end of the transmission line includes applying the second tension-load-supporting mechanism to the second end of the first transmission line and applying a third tension-load-supporting mechanism to the second end of the second transmission line while the first level of tension is applied to the first transmission line and the second transmission line.
16. A pipe assembly, comprising:
- a pipe having a main cavity extending through the pipe along a longitudinal axis and a transmission line channel located radially outward from the main cavity and extending through the pipe substantially parallel to the longitudinal axis, the transmission line channel having a first shoulder at a first end of the transmission line channel and a second shoulder at a second end of the transmission line channel; and
- a transmission line assembly including a transmission line extending along the transmission line channel, a first tension-load-bearing mechanism at a first end of the transmission line and a second tension-load-bearing mechanism at a second end of the transmission line, the first tension-load-bearing mechanism and the second tension-load-bearing mechanism configured to press against the first shoulder and the second shoulder, respectively, to maintain a tension along the transmission line.
17. The pipe assembly of claim 16, wherein the first tension-load-bearing mechanism includes a first axial load sleeve welded to the transmission line and having an outer diameter greater than an inner diameter of the first shoulder.
18. The pipe assembly of claim 17, wherein the second tension-load-bearing mechanism includes a second axial load sleeve affixed to the transmission line and having an outer diameter greater than an inner diameter of the second shoulder.
19. The pipe assembly of claim 18, wherein the second axial load sleeve is made of a shape memory material configured to constrict around the transmission line based on heat being applied to the second axial load sleeve.
20. The pipe assembly of claim 17, wherein the second tension-load-bearing mechanism includes a second axial load sleeve welded to the transmission line and having an outer diameter less than an inner diameter of the second shoulder, and a constriction sleeve positioned between the second axial load sleeve and the second shoulder, the constriction sleeve having an outer diameter at a first end adjacent to the second shoulder greater than an inner diameter of the second shoulder and having an inner diameter at a second end adjacent to the second axial load sleeve less than an outer diameter of the second axial load sleeve.
21. The pipe assembly of claim 20, wherein the constriction sleeve is configured to constrict at the second end based on a mechanical force being applied to an outer surface of the second end of the constriction sleeve by a cone sleeve having a slanted inner surface.
22. The pipe assembly of claim 20, wherein the constriction sleeve is made of a shape memory material and the second end of the constriction sleeve is configured to constrict towards the transmission line based on heat being applied to the constriction sleeve.
Type: Application
Filed: Jun 27, 2013
Publication Date: Jan 1, 2015
Patent Grant number: 9722400
Inventors: Michael Koppe (Lachendorf), Stephan Mueller (Hannover), Ingo Roders (Seelze), Rene Schulz (Lower Saxony), Henning Rahn (Celle), Robert Buda (Lower Saxony), Detlev Benedict (Celle), Julia Reisewitz (Celle), Helmut Floerke (Celle)
Application Number: 13/929,470
International Classification: H02G 3/02 (20060101); H02G 1/00 (20060101);